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Ion exchange is an effective postsynthesis strategy for the design of colloidal nanomaterials with unique structures and properties. In contrast to the rapid development of cation exchange (CE), the study of anion exchange is still in its infancy and requires an in-depth understanding. Magic-size clusters (MSCs) are important reaction intermediates in quantum dot (QD) synthesis, and studying the ion exchange processes can provide valuable insights into the transformations of QDs. Here, we achieved anion exchange in Cd-based MSCs and elucidated the reaction pathways. We demonstrated that the anion exchange was a stepwise intermolecular transition mediated by covalent inorganic complexes (CICs). We proposed that this transition involved three essential steps: the disassembly of CdE-MSCs into CdE-CICs (step 1), an anion exchange reaction from CdE-CICs to CdE-CICs (step 2), and assembly of CdE-CICs to CdE-MSCs (step 3). Step 3 was the rate-determining step and followed first-order reaction kinetics ( = 0.01 min; from CdSe-MSCs to CdS-MSCs). Further studies revealed that the activity of foreign anions only affected the reaction kinetics without altering the reaction pathway. The present study provides a deeper insight into the anion exchange mechanisms of MSCs and will further shed light on the synthesis of QDs.
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http://dx.doi.org/10.1021/jacs.3c12853 | DOI Listing |
Angew Chem Int Ed Engl
March 2025
Chongqing University, School of Chemistry and Chemical Engineering, Chongqing University, CHINA.
The development of anion exchange membranes (AEMs) capable of facilitating rapid hydroxide ion transport, while maintaining robust mechanical stability, is considered a key direction for advancing hydrogen energy conversion systems. Herein, we synthesized a series of AEMs by grafting covalent organic frameworks (COFs) onto triphenylpiperidine copolymer and systematically evaluated the performance of AEMs. The tailored COFs, characterized by an extensive hydrogen bond network and high micro-porosity, created interconnected high-speed ion transport channels, significantly reducing the resistance to hydroxide ion conduction.
View Article and Find Full Text PDFSci Adv
March 2025
Institute of Molecular Plus, Department of Chemistry, Tianjin University, Nankai District, Tianjin 300072, P. R. China.
Driven by boosting demands for sustainable energy, highly conductive hydroxide exchange membranes (HEMs) are urgently required in electrochemical conversion devices. The hydrogen bonds shorter than 2.5 angstrom are expected to accelerate the ion transport.
View Article and Find Full Text PDFACS Appl Energy Mater
March 2025
Department of Chemistry and Industrial Chemistry, University of Genoa, 16146 Genoa, Italy.
The high cost and low energy efficiency of conventional water electrolysis methods continue to restrict the widespread adoption of green hydrogen. Anion exchange membrane (AEM) water electrolysis is a promising technology that can produce hydrogen using cost-effective transition-metal catalysts at high energy efficiency. Herein, we investigate the catalytic activity of nickel and iron nanoparticles dispersed on metal-oxide supports for the oxygen evolution reaction (OER), employing electrochemical testing with an anion exchange ionomer to evaluate their potential for application in AEM electrolyzers.
View Article and Find Full Text PDFEnviron Geochem Health
March 2025
Inner Mongolia Key Laboratory of River and Lake Ecology, School of Ecology and Environment, Inner Mongolia University, Hohhot, 010021, China.
The groundwater salinization problem in the south bank of the Yellow River irrigation area is severe, restricting the sustainability of groundwater resources. However, the groundwater salinization formation mechanism is unclear. Accordingly, this study analyzed the chemical characteristics and salinization mechanism of groundwater based on hydrochemical analyses (self-organizing maps, SOM), isotope analyses (δO and δD), and quantitative models (Rayleigh distillation model), as well as evaluating the potential health risks of fluoride.
View Article and Find Full Text PDFInt J Biol Macromol
March 2025
State Key Laboratory of Advanced Fiber Materials, College of Materials Science and Engineering, College of Physics, Innovation Center for Textile Science and Technology, Key Laboratory of High Performance Fibers & Products, Ministry of Education, Donghua University, Shanghai 201620, China. Electronic address:
The current methods of plastic production and disposal are unsustainable, presenting significant environmental risks. Although eco-friendly processing holds promise for mitigating these challenges, overcoming the associated technological obstacles remains a critical issue. Herein, we developed a hydroplastic material, PIL-Alg plastic, synthesized through the interaction of polyionic liquids (PILs) and sodium alginate.
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